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In situ ellipsometric study of surface immobilization of flagellar filaments

机译:鞭毛细丝表面固定化的原位椭偏研究

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摘要

Protein filaments composed of thousands of subunits are promising candidates as sensing elements in biosensors. In this work in situ spectroscopic ellipsometry is applied to monitor the surface immobilization of flagellar filaments. This study is the first step towards the development of layers of filamentous receptors for sensor applications. Surface activation is performed using silanization and a subsequent glutaraldehyde crosslinking. Structure of the flagellar filament layers immobilized on activated and non-activated Si wafer substrates is determined using a two-layer effective medium model that accounted for the vertical density distribution of flagellar filaments with lengths of 300-1500 nm bound to the surface. The formation of the first interface layer can be explained by the multipoint covalent attachment of the filaments, while the second layer is mainly composed of tail pinned filaments floating upwards with the free parts. As confirmed by atomic force microscopy, covalent immobilization resulted in an increased surface density compared to absorption.
机译:由数千个亚基组成的蛋白丝有望成为生物传感器中的传感元件。在这项工作中,原位光谱椭偏仪用于监测鞭毛丝的表面固定。这项研究是开发用于传感器应用的丝状受体层的第一步。使用硅烷化和随后的戊二醛交联进行表面活化。使用两层有效介质模型确定固定在活化和未活化Si晶片衬底上的鞭毛丝层的结构,该模型考虑了结合到表面的长度为300-1500 nm的鞭毛丝的垂直密度分布。第一界面层的形成可以通过细丝的多点共价连接来解释,而第二层主要由带有自由部分向上漂浮的尾部固定细丝组成。如原子力显微镜所证实的,与吸收相比,共价固定化导致表面密度增加。

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  • 来源
    《Applied Surface Science》 |2010年第1期|p.319-324|共6页
  • 作者单位

    Department of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary;

    rnDepartment of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary;

    rnDepartment of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary;

    Department of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary,Department of Nanotechnology, Research Institute of Chemical and Process Engineering, Faculty of Information Technology, University of Pannonia, Egyetem u. 10, Veszprem, H-8200 Hungary;

    rnDepartment of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary;

    rnDepartment of Nanotechnology, Research Institute of Chemical and Process Engineering, Faculty of Information Technology, University of Pannonia, Egyetem u. 10, Veszprem, H-8200 Hungary;

    rnDepartment of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary,Department of Nanotechnology, Research Institute of Chemical and Process Engineering, Faculty of Information Technology, University of Pannonia, Egyetem u. 10, Veszprem, H-8200 Hungary;

    Department of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary,Department of Nanotechnology, Research Institute of Chemical and Process Engineering, Faculty of Information Technology, University of Pannonia, Egyetem u. 10, Veszprem, H-8200 Hungary,Institute of Enzymology, Karolina it 29-33, Budapest, H-1113 Hungary;

    Department of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary;

    Department of Photonics, Research Institute for Technical Physics and Materials Science, H-1121, Konkoly Thege Miklos ut 29-33, Budapest, Hungary,Department of Nanotechnology, Research Institute of Chemical and Process Engineering, Faculty of Information Technology, University of Pannonia, Egyetem u. 10, Veszprem, H-8200 Hungary;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    protein immobilization; flagellar filament; ellipsometry; biosensor;

    机译:蛋白质固定化鞭毛花丝椭圆仪生物传感器;
  • 入库时间 2022-08-18 03:07:32

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